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Muestreo Adaptativo de Bola de Nieve×Muestreo Adaptativo por Conglomerados×
CampoMetodología de encuestasMetodología de encuestas
FamiliaProcess / pipelineProcess / pipeline
Año de origen1990s–2000s (as combined approach)1990
Autor originalCombines principles from S. K. Thompson (adaptive sampling, 1990) and L. A. Goodman (snowball sampling, 1961)Steven K. Thompson
TipoNon-probability / adaptive sampling designProbability-based adaptive sampling design
Fuente seminalThompson, S. K. (1990). Adaptive cluster sampling. Journal of the American Statistical Association, 85(412), 1050–1059. DOI ↗Thompson, S. K. (1990). Adaptive cluster sampling. Journal of the American Statistical Association, 85(412), 1050–1059. DOI ↗
Aliasadaptive referral sampling, adaptive chain-referral sampling, dynamic snowball samplingACS, adaptive network sampling, sequential cluster sampling, neighborhood adaptive sampling
Relacionados46
ResumenAdaptive snowball sampling is a hybrid sampling strategy that recruits initial participants (seeds) from a target population and then dynamically adjusts referral chains based on pre-specified criteria — such as population density, diversity, or theoretical saturation. Combining the chain-referral logic of snowball sampling with the responsive decision rules of adaptive sampling, it is particularly suited to studying rare, hidden, or hard-to-reach populations where conventional frames are unavailable.Adaptive cluster sampling (ACS) is a probability-based design in which an initial random sample of units triggers the inclusion of neighboring units whenever a predefined condition — typically a threshold count of a rare attribute — is satisfied. Developed by Steven K. Thompson in 1990, ACS is especially powerful for estimating the abundance or distribution of rare, spatially clustered populations such as endangered species, disease hotspots, or hard-to-reach social groups.
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ScholarGateComparar métodos: Adaptive Snowball Sampling · Adaptive Cluster Sampling. Recuperado el 2026-06-17 de https://scholargate.app/es/compare